A cold cathode tube having a fluorescent material coated along the inner wall thereof and the tube being filled with a small amount of gas, characterized in that the inner wall of the tube is coated with a ultra-violet ray reflective film capable of reflecting ultra-violet light, and the light emission surface at the inner side of the ultra-violet light reflective film does not coat with a fluorescent material, and the remaining region of the light emission surface at the outer wall is coated with a visible light-reflective layer. In addition, the length of the parallel section of the tube can be extended to increase lighting area, and thus the efficiency of light energy output is increased.
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1. A cold cathode tube comprising:
a longitudinally extended tubular enclosure containing a predetermined gas concentration for emission of ultraviolet light responsive to an electrical discharge therein; an ultraviolet light reflective layer coated on a longitudinally extended interior surface of said tubular enclosure to form a closed cross-sectional contour; a visible light reflective layer coated on a portion of an exterior surface of said tubular enclosure, a longitudinally extended portion of said tubular enclosure being devoid of said visible light reflective layer to define a light emission portion of said tubular enclosure; and, a fluorescent material layer coated over a portion of said ultraviolet light reflective layer interior to said tubular enclosure, said light emission portion of said tubular enclosure being devoid of said fluorescent material layer.
2. The cold cathode tube as recited in
3. The cold cathode tube as recited in
4. The cold cathode tube as recited in
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a) Technical Field of the Invention
The present invention relates to a cold cathode tube for use in Liquid Crystal Display (LCD), and in particular, to a cold cathode tube in which the inner wall is coated with an ultra-violet (UV) light reflective film capable of reflecting ultraviolet light.
b) Description of the Prior Art
The reflective function of the lampshade 14 allows the visible light to reflect to the light source panel 2 so as to increase the light output efficiency of the tube 1. However, the mounting of the lampshade 14 will increase the cost of production, and the entire cathode tube cannot be miniaturized. In addition, the emitted light energy will be lowered during the process of light reflection from the lamnpshade 14 to the light source panel 2. Due to the fact that the visible light will lose some of the energy as a result of the fluorescent agent layer 13. At the same time, the UV absorbing thin film 12 will absorb the unconverted UV such that the output energy within the tube 1 cannot effectively utilizes the energy within the tube. This will lower the light effectiveness of tube.
Further, the external diameter of the tube 1 is smaller than the height of the incident face 21 of the light source panel 2 so as to connect the lampshade 14 to the incident face 21 to lead light energy to the light source panel 2. This will restrict the tube and in turn, restrict the output light energy.
Accordingly, it is an object of the present invention to provide a cold cathode tube having a fluorescent material coated along the inner wall thereof and the tube being filled with a small amount of gas, characterized in that the inner wall of the tube is coated with a ultra-violet ray reflective film capable of reflecting ultra-violet light, and the light emission surface at the inner side of the ultra-violet light reflective film does not coat with a fluorescent material, and the remaining region of the light emission surface at the outer wall is coated with a visible light-reflective layer. In addition, the length of the parallel section of the tube can be extended to increase the light emission area, and thus the efficiency of light energy output is increased.
Yet another object of the present invention is to provide a cold cathode tube, wherein the flat board shaped light output face of the tube is extended with a parallel section connected with a circular arch-shaped section.
A further object of the present invention is to provide a cold cathode tube, wherein the length of the parallel section can be extended to increase the light emission area so as to increase the light energy output of the tube.
Other features and benefits of the present invention will become apparent from the detailed description with the accompanying drawings contained thereinafter.
Referring to
The tube 31 has a flat light emission face 32 laterally extended to form a parallel section 33 which is further connected to a circular arch-shaped section 34 such that the tube 31 has a substantially "D"-shaped cross-section, which is shown in FIG. 3. Referring to
In accordance with the present invention, the "D"-shaped tube (sectional) of the cold cathode tube 3 employs the light output face 31 as a flat surface 40 closely adhered with the light source panel 4. This structure does not have a shade as compared to the conventional cathode tube. Besides, light energy can be directly emitted out via the light emission face 32 in order to reduce the loss of the emitted-light. Referring to
Thus, the present invention lowers the inherited exhaustion and damages caused by a conventional cold cathode tube so as to achieve a high light emission efficiency.
As the light emission face 32 of the tube 31 is flat and the incident face 41 of the light source panel 4 is closely connected, when the length of the parallel section 33 is increased, the light emission area of the tube 41 is thus increased.
If the light emission face 32 remains constant the output efficiency of the entire tube light energy will be effectively increased.
While the invention has been described with respect to a preferred embodiment it will be clear to those skilled in the art that modifications and improvements may be made to the invention without departing from the spirit and scope of the invention. Therefore, the invention is not to be limited by the specific illustrative embodiment, but only by the scope of the appended claims.
Miyashita, Kazuhiro, Chen, Hsiu-Wen
Patent | Priority | Assignee | Title |
Patent | Priority | Assignee | Title |
5008789, | Feb 22 1989 | Nichia Corporation | Fluorescent lamp having ultraviolet reflecting layer |
5808409, | Dec 17 1993 | Kabushiki Kaisha Toshiba | Phosphor, cathode-ray tube, fluorescent lamp and radiation intensifying screen |
Executed on | Assignor | Assignee | Conveyance | Frame | Reel | Doc |
Aug 10 2000 | CHEN, HSIU-WEN | Radiant Opto-Electronics Corporation | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 011022 | /0641 | |
Aug 10 2000 | MIYASHITA, KAZUHIRO | Radiant Opto-Electronics Corporation | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 011022 | /0641 | |
Aug 14 2000 | Radiant Opto-Electronics Corporation | (assignment on the face of the patent) | / |
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